[Q.] If one end of the diameter of the circle [tex] {x}^{2} + {y}^{2} – 8x – 14y + c = 0[/tex]is the point (–3, 2), then its other end is the point ? ● Correct answer is:- ( 11 , 12) I want only steps….please give solutions. About the author Athena
Question :- ⇒ If one end of the diameter of the circle [tex]x^{2} + y^{2} -8x – 14y + c = 0[/tex] is the point (–3, 2), then its other end is the point ? Answer:- ⇒ As , General equation of circle is ≡ [tex]x^{2} + y^{2} + 2gx + 2fy + K = 0[/tex] —–(1) ⇒ one end of circle is is B: ( -3 , 2 ) and other is A: ( a , b ).. ⇒ As , given equation of circle is ≡ [tex]x^{2} + y^{2} -8x – 14y + c = 0[/tex] comparing with equation (1).. We get , [tex]g = – 4[/tex] and [tex]f = – 7[/tex] ⇒ As, we know that center of circle is : C = ( -g , -f ) ⇒ So, center is C : ( 4 , 7 ). So, by using mid point ⇒ [tex]( 4 , 7 ) =( \frac{a-3}{2} , \frac{b + 2}{2} )[/tex] ∴ 8 = a – 3 . ⇒ a = 11 ∴ 14 = b + 2 . ⇒ b = 12 So, another point is [tex]A(a,b) = ( 11,12 )[/tex] I hope this will help you thank you. Reply
Question :-
⇒ If one end of the diameter of the circle [tex]x^{2} + y^{2} -8x – 14y + c = 0[/tex] is the point (–3, 2), then its other end is the point ?
Answer:-
⇒ As , General equation of circle is
≡ [tex]x^{2} + y^{2} + 2gx + 2fy + K = 0[/tex] —–(1)
⇒ one end of circle is is B: ( -3 , 2 ) and other is A: ( a , b )..
⇒ As , given equation of circle is
≡ [tex]x^{2} + y^{2} -8x – 14y + c = 0[/tex]
comparing with equation (1)..
We get ,
[tex]g = – 4[/tex] and [tex]f = – 7[/tex]
⇒ As, we know that center of circle is : C = ( -g , -f )
⇒ So, center is C : ( 4 , 7 ).
So, by using mid point
⇒ [tex]( 4 , 7 ) =( \frac{a-3}{2} , \frac{b + 2}{2} )[/tex]
∴ 8 = a – 3 . ⇒ a = 11
∴ 14 = b + 2 . ⇒ b = 12
So,
another point is [tex]A(a,b) = ( 11,12 )[/tex]